首页> 外文期刊>IEEE Transactions on Energy Conversion >Analysis of High Gear Ratio Capabilities for Single-Stage, Series Multistage, and Compound Differential Coaxial Magnetic Gears
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Analysis of High Gear Ratio Capabilities for Single-Stage, Series Multistage, and Compound Differential Coaxial Magnetic Gears

机译:单级,串联多级和复合差动同轴电磁齿轮的高传动比能力分析

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摘要

Magnetic gears perform the same fundamental power conversion asmechanical gears. However, magnetic gears have significant potential benefits due to their noncontact operation. This paper compares three different ways to achieve high gear ratios using coaxial magnetic gears by evaluating trends for radial flux coaxial magnetic gears with surface mounted permanent magnets. First, a single-stage design can be used, but the torque density and efficiency both decline as the gear ratio increases. Additionally, the gear ratio achievable with a single-stage coaxial magnetic gear is limited by practical considerations, such as the maximum number of modulators and pole pairs that can be used within the given space. Second, a multistage design can be formed by connecting single-stage designs in series. Multistage designs can achieve much higher net gear ratios with much less of a torque density penalty, especially as the number of stages increases, but this entails greater complexity. Third, the compound differential coaxial magnetic gear (CDCMG) is proposed. The CDCMG is formed by interconnecting two single-stage coaxial magnetic gears and can achieve gear ratios much higher than the product of the gear ratios of the individual stages. However, the circulating power in the CDCMG leads to poor efficiencies.
机译:电磁齿轮执行与机械齿轮相同的基本功率转换。但是,电磁齿轮由于其非接触式操作而具有巨大的潜在优势。本文通过评估带表面安装永磁体的径向磁通同轴磁性齿轮的趋势,比较了使用同轴磁性齿轮实现高传动比的三种不同方法。首先,可以使用单级设计,但是随着齿轮比的增加,扭矩密度和效率都会下降。另外,单级同轴磁性齿轮可获得的传动比受到实际考虑的限制,例如在给定空间内可以使用的最大调制器和极对数。其次,可以通过串联连接单级设计来形成多级设计。多级设计可以实现更高的净齿轮比,而扭矩密度损失却要少得多,尤其是随着级数的增加,但这会带来更大的复杂性。第三,提出了复合差动同轴电磁齿轮(CDCMG)。 CDCMG是通过将两个单级同轴磁性齿轮互连而形成的,可以实现比各个级齿轮比的乘积高得多的齿轮比。但是,CDCMG中的循环功率会导致效率低下。

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